A handheld rfid reader may include a housing, an rf antenna carried by the housing, and an rf transceiver carried the housing and being coupled to the rf antenna. The handheld rfid reader may include a controller carried by the housing and being coupled to the rf antenna and the rf transceiver, a communication interface carried by the housing and coupled to the controller, and a mobile wireless communications device carried by the housing and coupled to the communication interface. The mobile wireless communications device may be configured to cooperate with the controller to receive data from an rfid device via the rf antenna.
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16. A method of making a handheld radio frequency identification (rfid) reader, the method comprising:
forming a radio frequency (rf) antenna carried by a housing, the rf antenna comprising
a circular polarized antenna element, and
an rf absorber material under the circular polarized antenna element and configured to dampen a back lobe of a radiation pattern of the rf antenna, the housing defining a cavity directly under the rf absorber material;
coupling an rf transceiver, carried by the housing, to the rf antenna;
coupling a controller, carried by the housing, to the rf antenna and the rf transceiver;
coupling a communication interface, carried by the housing, to the controller; and
coupling a mobile wireless communications device, to be carried by the housing, to the communication interface, the mobile wireless communications device being configured to cooperate with the controller to receive data from an rfid device via the rf antenna.
1. A handheld radio frequency identification (rfid) reader comprising:
a housing;
a radio frequency (rf) antenna carried by said housing, said rf antenna comprising
a circular polarized antenna element, and
an rf absorber material under said circular polarized antenna element and configured to dampen a back lobe of a radiation pattern of said rf antenna, said housing defining a cavity directly under said rf absorber material;
an rf transceiver carried by said housing and being coupled to said rf antenna;
a controller carried by said housing and being coupled to said rf antenna and said rf transceiver;
a communication interface carried by said housing and coupled to said controller; and
a mobile wireless communications device carried by said housing and coupled to said communication interface, said mobile wireless communications device being configured to cooperate with said controller to receive data from an rfid device via said rf antenna.
9. A communication system comprising:
a server; and
a handheld radio frequency identification (rfid) reader comprising
a housing,
a radio frequency (rf) antenna carried by said housing, said rf antenna comprising
a circular polarized antenna element, and
an rf absorber material under said circular polarized antenna element and configured to dampen a back lobe of a radiation pattern of said rf antenna, said housing defining a cavity directly under said rf absorber material,
an rf transceiver carried by said housing and being coupled to said rf antenna,
a controller carried by said housing and being coupled to said rf antenna and said rf transceiver,
a communication interface carried by said housing and coupled to said controller, and
a mobile wireless communications device carried by said housing and coupled to said communication interface, said mobile wireless communications device being configured to
cooperate with said controller to receive data from an rfid device via said rf antenna, and
communicate with an external database in said server for storing the received data.
2. The handheld rfid reader of
3. The handheld rfid reader of
4. The handheld rfid reader of
5. The handheld rfid reader of
6. The handheld rfid reader of
7. The handheld rfid reader of
8. The handheld rfid reader of
10. The communication system of
11. The communication system of
12. The communication system of
13. The communication system of
14. The communication system of
15. The communication system of
17. The method of
18. The method of
19. The method of
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This application is based upon prior filed Application No. 62/469,793 filed Mar. 10, 2017, the entire subject matter of which is incorporated herein by reference in its entirety.
The present disclosure relates to the field of communications, and, more particularly, to radio frequency tag readers and related methods.
Passive RFID tags provide adequate localization of a tagged asset when the reader can come into close proximity with the items being scanned. However when a large number of tags are in question, RFID scanners can create a huge choke point or bottleneck in attempting to scan multiple tags in a moderate time frame. Furthermore depending on the efficacy of the scan technique, there is a large possibility of miscounting the tagged assets. This is where active tags that beacon at a periodic data rate have the advantage. Active tags eliminate the choke point by broadcasting the radio waves over several meters and at a periodic data rate which allows for multiple hits on target as evidenced by the reader. The broad range of the active tag in turn makes it difficult to localize to a specific set of tags in one region (i.e. a storage bin) versus other tags in the general vicinity.
Generally, a handheld radio frequency identification (RFID) reader may comprise a housing, an RF antenna carried by the housing, an RF transceiver carried the housing and being coupled to the RF antenna, and a controller carried by the housing and being coupled to the RE antenna and the RF transceiver. The handheld REID reader may also comprise a communication interface carried by the housing and coupled to the controller, and a mobile wireless communications device carried by the housing and coupled to the communication interface. The mobile wireless communications device may be configured to cooperate with the controller to receive data from an RFID device via the RE antenna. Advantageously, the handheld RFID reader provides are robust and versatile REID device.
Also, the RE antenna may comprise a circle-shaped antenna. In some embodiments, the communication interface comprises a wired communication interface. In other embodiments the communication interface comprises a wireless communication interface.
The RF antenna may be carried by an external surface of the housing. The housing may define a device recess configured to receive the mobile wireless communications device. The housing may comprise a pistol style grip opposing the device recess. The mobile wireless communications device may be configured to communicate with an external database for storing the received data.
Another aspect is directed to a communication system comprising a server, and a handheld RFID reader. The RFID reader may include a housing, an RE antenna carried by the housing, an RF transceiver carried the housing and being coupled to the RF antenna, and a controller carried by the housing and being coupled to the RF antenna and the RF transceiver. The handheld RFID reader may also comprise a communication interface carried by the housing and coupled to the controller, and a mobile wireless communications device carried by the housing and coupled to the communication interface. The mobile wireless communications device may be configured to cooperate with the controller to receive data from an RFID device via the RF antenna, and communicate with an external database in the server for storing the received data.
Yet another aspect is directed to a method of making a handheld RFID reader. The method comprising forming an RF antenna carried by a housing, coupling an RF transceiver, carried the housing, to the RF antenna, and coupling a controller, carried by the housing, to the RF antenna and the RE transceiver. The method may include coupling a communication interface, carried by the housing, to the controller, and coupling a mobile wireless communications device, to be carried by the housing, to the communication interface, the mobile wireless communications device being configured to cooperate with the controller to receive data from an REID device via the RF antenna.
The present disclosure will now be described more fully hereinafter with reference to the accompanying drawings, in which several embodiments of the invention are shown. This present disclosure may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present disclosure to those skilled in the art. Like numbers refer to like elements throughout, and base 100 reference numerals are used to indicate similar elements in alternative embodiments.
It is desired to be able to scan an active tags with the directionality of passive tags without sacrificing range and the ability to quickly count and sort large amounts of assets. To address these problems an Internet of Things (IoT) based scanning approach is desirable. Using an ‘always connected’ sensor that supports remote access and configuration over a network allows users to monitor conditions and receive real-time alerts while away from the vicinity. Furthermore, a host sensor capable of reading other smart devices and sensors allows for a mesh network of smart devices. Such a network expanding the area and conditions under monitor less daunting.
In the present invention, a directional reader for an active RFID tag is formed using multiple antennas capable of pairing with multiple radio protocols and communication standards. Information gathered has backbone access through existing network infrastructure for record storage in secure databases. Localized software paired with the reader provides flexibility for parameter configurations as well as visual usefulness of active data acquired.
Multiple antennas are paired with radio protocols for standard radio communication. A directional antenna is combined with various other antenna form factors linked to a standard radio communication protocol. The combination of antennas allows for the readability of active RFID tags from a specific direction.
Information attained through the reader from an active RFID tag has access through backbone infrastructure through existing network protocols. The access to existing network infrastructures allows data storage and sharing flexibility. Data from the active RFID tags can be stored to a secured database of database of choice.
The reader is paired with software for configuration and data display purposes. The software is not limited to any form of operating system and can exist local or in remote proximity to the reader i.e. laptop, smartphone. Parameters with be configurable in the software both as to the functionality of the reader and the data displayed by an active RFID tag.
With Reference to
With reference to
With reference to
Referring to
The companion reader is intended to assist with geofencing and localized reads to within a sub region of a larger building. To facilitate this mode, multiple antennae is used on the said reader to eliminate false reads due to multipath and other signals picked up from outside the room. The onboard path antenna scans the power emanating from a tag, the reader then switches to an off-board antenna that is cavity backed to beam form and pickup any signals emanating from behind the reader, the third off-board antenna directs for power emanating from side lobes or any other energy causing reflections into the main antenna beam. An onboard algorithm weights the strength of main antennae against the reflection antennae and returns a positive read if the RSSi value weights higher than the root-sum-square of the other antennae. By locating the antennae off-board, customized RF solutions can take into account unique features of certain building structures.
A monitoring device, comprising: A sensor, said sensor detecting at least one vital signature; Identification of persons in proximity; Communication with interfaced wireless sensors; Said wireless sensors transmitting sensor related information to monitoring device; and Wherein said related information and said monitoring device are used to communicate conditions of persons or objects.
An RSSI antennae processing algorithm for localizing tags within a geofenced perimeter. Whereas the said sensor shall be embodied in an electronic circuit assembly/enclosure.
An IoT based monitoring device uses RF technologies to communicate with additional sensors to determine conditions of persons of objects in an environment. Multiple modal nature allows for Wi-Fi, cellular, and Bluetooth scanning and broadcasting. Exemplary embodiments include proximity based and biometric based sensors which transmits sensor data to device. Generally, the alerts are generated based on nature of data received. Alerts are recorded on cloud services and may be sent to user via SMS. Additionally, identification via Bluetooth and RF tag reading and cellular MAC and network hostname reading are featured.
Referring to
Referring to
Referring to
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Referring to
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Referring to
The server 808 illustratively includes a processor 809, and a memory 810 cooperating therewith. The user of the handheld RFID reader 801 may activate the RFID device 806 and scan it for encoded data. For example, the handheld RFID reader 801 may be used in an inventory application, where the user must scan and register a large number of adjacent RFID devices attached to items being inventoried.
As will be appreciated, the server 808 may comprise a remote computing device in communication with a plurality of handheld RFID readers 801 over a network, such as the Internet. The server 808 may also comprise a virtual server provided via a cloud computing service, such as Amazon Web Services, as available from Amazon.com, Inc., of Seattle, Wash.
The handheld RFID reader 801 illustratively includes a housing 811, an RF antenna 802 carried by the housing, an RF transceiver 803 carried the housing and being coupled to the RF antenna, and a controller 804 carried by the housing and being coupled to the RF antenna and the RF transceiver. The handheld RFID reader 801 illustratively includes a communication interface 805 carried by the housing 811 and coupled to the controller 804, and a mobile wireless communications device 807 removably carried by the housing and coupled to the communication interface. The mobile wireless communications device 807 is configured to cooperate with the controller 804 to receive data from the RFID device 806 via the RF antenna 802, and communicate with an external database in the server 808 for storing the received data.
In some embodiments (
In some embodiments (
In some embodiments, the communication interface 805 comprises a wired communication interface (e.g. a USB Type-C connection, a Lightening connection, as available from the Apple Corporation of Cupertino, Calif.). In other embodiments, such as the aforementioned embodiment where the mobile wireless communications device 807 is temporarily coupled to the handheld RFID reader 801, the communication interface 805 comprises a wireless communication interface (e.g. Bluetooth, infrared connection, near field communications (NFC)).
Yet another aspect is directed to a method of making a handheld RFID reader 801. The method comprising forming an RF antenna 802 carried by a housing 811, coupling an RF transceiver 803, carried the housing, to the RF antenna, and coupling a controller 804, carried by the housing, to the RF antenna and the RF transceiver. The method includes coupling a communication interface 805, carried by the housing 811, to the controller 804, and coupling a mobile wireless communications device 807, to be carried by the housing, to the communication interface. The mobile wireless communications device 807 is configured to cooperate with the controller 804 to receive data from an RFID device 806 via the RF antenna 802.
Referring now additionally to
Referring now additionally to
Referring now additionally to
Many modifications and other embodiments of the present disclosure will come to the mind of one skilled in the art having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is understood that the present disclosure is not to be limited to the specific embodiments disclosed, and that modifications and embodiments are intended to be included within the scope of the appended claims.
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